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I have the following class

public class MyClass<T> {
    public Class<T> getDomainClass() {
          GET THE CLASS OF T
    }
}

I've googled this problem and all the answers I could find told me to use getGenericSuperClass(), but the problem of this method is that I must have a second class that extends MyClass and I don't want to do this. What I need is to get the parametrized type of a concrete class?

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5 Answers

up vote 5 down vote accepted

You can't. The information you want (i.e. the value of T) is not available at run-time due to type-erasure.

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Due to type erasure, the only way to get it is if it is passed as an explicit parameter - either in a method, or in the constructor.

public class MyClass<T> {
    public Class<T> getDomainClass(Class<T> theClass) {
          // use theClass
    }
}
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The only way I know of:

public class MyClass<T> {

    private Class<T> clazz;

    public MyClass(Class<T> clazz) {
       this.clazz = clazz;
    }

    public Class<T> getDomainClass() {
      return clazz;
    }
}

So you basically provide the runtime the info, it doesn't have from the compiler.

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You can do it if you want to get a generic type you inherit! Add this method to your class and profit! ;)

public Class<?> getGenericType() {
    Class result = null;
    Type type = this.getClass().getGenericSuperclass();

    if (type instanceof ParameterizedType) {
        ParameterizedType pt = (ParameterizedType) type;
        Type[] fieldArgTypes = pt.getActualTypeArguments();
        result = (Class) fieldArgTypes[0];
    }

    return result;
}
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If you need to know the type you probably shouldn't be using generics.

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